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Fig. 9 in Distribution Patterns Of Mushroom Corals (Scleractinia: Fungiidae) Across The Spermonde Shelf, South Sulawesi
Fig. 9. Scatter diagrams of shelf zones 1–4 indicating mushroom coral sample sizes and number of species represented in 50 m2 SUs.
Fig. 10 in Distribution Patterns Of Mushroom Corals (Scleractinia: Fungiidae) Across The Spermonde Shelf, South Sulawesi
Fig. 10. Westward slope of reef 3C (Kudingareng Keke, May 28, 1986) with dense multi-species assemblage of mushroom corals mixed with coral fragments at 12 m (A) and 15 m depth (B).
Fig. 6 in Distribution Patterns Of Mushroom Corals (Scleractinia: Fungiidae) Across The Spermonde Shelf, South Sulawesi
Fig. 6. Schematic cross-section of a transect profile (example: W transect of reef 3A) with the positions of the 50 × 1 m² belt quadrats (SUs). The belt quadrats on the reef slope and base are indicated with 3 m depth intervals; those on the outer reef flat at 3 m depth and at 5, 10, 20, and 50 m distance from the 3 m isobaths in the direction of the island.
Fig. 1 in Mesophotic mushroom coral records at Brunei Darussalam support westward extension of the Coral Triangle to the South China Sea waters of Northwest Borneo
Fig. 1. Map of N.W. Borneo region. White stars designate Fungiidae survey locations. MP = Mampak Patches and LR = Louisa Reef (this study); LL = Layang Layang atoll, KK = islands of the Tungku Abdul Rahman Park near Kota Kinabalu, K = Kudat area (from the literature). Dashed black line represents current western limit of the Coral Triangle (map modified from Google Earth image).
Fig. 6. A in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 6. A, Ctenactis albitentaculata at Littledale Shoal, north; B, Ctenactis crassa at Otterspool Rock; C, Ctenactis echinata at Abana Rock, south; D, Herpolitha limax at Littledale Shoal, south; E, Sandalolitha dentata at Porter Patch; F, Sandalolitha robusta at Littledale Shoal, south; G, Podabacia crustacea at Pelong Rocks, south-southwest; H, Podabacia motuporensis at Two Fathom Rock.
Fig. 5. A in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 5. A, Heliofungia actiniformis at Littledale Shoal, north; B, Polyphyllia talpina at Pelong Rocks, southwest; C, Pleuractis granulosa at Littledale Shoal, south; D, Pleuractis gravis at Littledale Shoal, south; E, Pleuractis moluccensis at Pelong Rocks, southwest; F, Pleuractis paumotensis at Abana Rock, south; G, Pleuractis taiwanensis at Pelong Rocks, north; H, Lobactis scutaria at Pelong Rocks, northeast.
Fig. 4. A in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 4. A, Cycloseris explanulata at Porter Patch; B, Cycloseris wellsi at Abana Rock, north; C, Cycloseris mokai at Littledale Shoal, south; D, Lithophyllon scabra at Hornet Reef (Brunei Patches); E, Lithophyllon concinna at Abana Rock, south; F, Lithophyllon repanda at Abana Rock, north; G, Lithophyllon undulatum at Abana Rock, south; H, Halomitra pileus at Abana Rock, south; I, Danafungia horrida at Pelong Rocks, northeast; J, Danafungia scruposa at Pelong Rocks, southwest; K, Fungia fungites at Abana Rock, south.
Fig. 7. Zoopilus echinatus. A fragment with regenerated margins from Silk Rock, 10 m depth, 21 October 2008, Coll. L. Devantier. A in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 7. Zoopilus echinatus. A fragment with regenerated margins from Silk Rock, 10 m depth, 21 October 2008, Coll. L. Devantier. A, upper surface; B, lower surface. Scale bar = 0.5 cm.
Fig. 2 in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 2. Species richness estimators (Colwell, 2009) for Fungiidae recorded at 17 sites off Brunei. The curves indicate that the occurrence of one additional species is possible when the maximum number of observed species (S Obs = 32) is compared to the maximum expected numbers (ICE, Chao 2 = 33). Only two species (Uniques) are each represented by a single individual.
Fig. 3. A, B in The mushroom coral fauna (Scleractinia: Fungiidae) of Brunei Darussalam (South China Sea) and its relation to the Coral Triangle
Fig. 3. A, B, Cycloseris fragilis, complete coral at Hornet Reef (Brunei Patches), fragmenting coral at Abana Rock, north; C, Cycloseris sinensis, fragmenting coral at Abana Rock, north; D–F, Cycloseris cyclolites at Hornet Reef (Brunei Patches), complete coral, fragmenting coral upper and lower side; G, H, Cycloseris somervillei at Chearnley Shoal, upper and lower side of a coral; I, Cycloseris costulata at Pelong Rocks, northeast; J, Cycloseris tenuis at Hornet Reef (Brunei Patches); K, Cycloseris vaughani at Colombo Reef (Champion Shoal).
Figure S2 in Collembola associated with edible mushrooms in China
Figure S2. Photos of mushroom Collembola. A. Ceratophysella communis in the soil and feeding on the hyphae of morels (the dark purple region), taken on 14.XI.2017 in Zhumadian, Henan; B. Mushroom (Lentinus edodes) infested by Ceratophysella liguladorsi, taken on 08.XII.2014 in Wuyi, Zhejiang; C. Ceratophysella communis on Pleurotus ostreatus (black dots), taken on 07.XII.2014 in Pinghu, Zhejiang; D. Hypogastrura yosiii in alcohol extracted from Pleurotus ostreatus, taken on 06.V.2014 in Liaocheng, Shandong; E. Hypogastrura quadritenenta in alcohol extracted from Stropharia rugosoannulata, taken on 07.V.2014 in Tai'an, Shandong; F. Thalassaphorura biquaternata in alcohol extracted from Pleurotus ostreatus, taken on 08.V.2014 in Laiwu, Shandong.
Figure 2 in Collembola associated with edible mushrooms in China
Figure 2. Reconstructed phylogenetic tree based on mitochondrial COI marker. Maximum-likelihood bootstrap support values are shown in the branches. The codes of sampling sites are referred in Fig. 1. The codes inserted before the species name are named for distinguishing samples from different collection locations in molecular experiments and the information in detail is listed in Table S2.
Figure S1 in Collembola associated with edible mushrooms in China
Figure S1. Neighbour‐joining tree based on COI for 161 specimens with node bootstrap values and species grouping shown.
Fig. 5 in Morphology, distribution and abundance of antennal sensilla of the oyster mushroom fly, Coboldia fuscipes (Meigen) (Diptera: Scatopsidae)
Fig. 5. SEM micrographs of Ba1, Ba2 and Ba3 of C. fuscipes. (a) Ba1and Ba2; (b) Ba3. Ba1, Basiconica sensilla1; Ba2, Basiconica sensilla2; Ba3, Basiconica sensilla3. Scale bar = 2 µm in (a) and 1 µm in (b).
Fig. 4 in Morphology, distribution and abundance of antennal sensilla of the oyster mushroom fly, Coboldia fuscipes (Meigen) (Diptera: Scatopsidae)
Fig. 4. SEM micrographs of Chaetie sensilla and Coeloconic sensilla of C. fuscipes. (a) Ch; (b) Co. Ch, Chaetie sensilla; Co, Coeloconic sensilla. Scale bar = 2 µm in (a) and 2 µm in (b).
Fig. 1 in Morphology, distribution and abundance of antennal sensilla of the oyster mushroom fly, Coboldia fuscipes (Meigen) (Diptera: Scatopsidae)
Fig. 1. SEM micrographs of C. fuscipes antennae. (a) The features of adult C. fuscipes antennae; (b) anterior surface of the whole antenna. Ce, compound eyes; An, antennae; Sc, scape; Pc, pedicel; Fl, flagellum. Scale bar = 100 µm in (a) and 50 µm in (b).
Fig. 2 in Morphology, distribution and abundance of antennal sensilla of the oyster mushroom fly, Coboldia fuscipes (Meigen) (Diptera: Scatopsidae)
Fig. 2. SEM micrographs of scape and pedicel. (a) Scape of C. fuscipes antennae; (b) pedicel of C. fuscipes antennae. Ch, Chaetie sensilla; Mt1, microtrichiae. Scale bar = 20 µm in (a), 10 µm in (b) and 2 µm in (c).
Investigating the phylogenetic history of toxin tolerance in mushroom-feeding Drosophila
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Data from: Tissue-specific O-GlcNAcylation profiling identifies substrates in translational machinery in the Drosophila mushroom body contributing to olfactory learning
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Data from: Continental-level population differentiation and environmental adaptation in the mushroom Suillus brevipes
Recent advancements in sequencing technology allowed researchers to better address the patterns and mechanisms involved in microbial environmental adaptation at large spatial scales. Here we investigated the genomic basis of adaptation to climate at the continental scale in Suillus brevipes, an ectomycorrhizal fungus symbiotically associated with the roots of pine trees. We used genomic data from 55 individuals in seven locations across North America to perform genome scans to detect signatures of positive selection and assess whether temperature and precipitation were associated with genetic differentiation. We found that S. brevipes exhibited overall strong population differentiation, with potential admixture in Canadian populations. This species also displayed genomic signatures of positive selection as well as genomic sites significantly associated with distinct climatic regimes and abiotic environmental parameters. These genomic regions included genes involved in transmembrane transport of substances and helicase activity potentially involved in cold stress response. Our study sheds light on large-scale environmental adaptation in fungi by identifying putative adaptive genes and providing a framework to further investigate the genetic basis of fungal adaptation.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.